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Prediction of flange wrinkles in deep drawing

机译:深拉法兰皱纹预测

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A numerical method for predicting the onset of flange wrinkles of small wavelength during deep drawing process is presented. The method is based on the approach developed by cao and Boyce (1997) for predicting the buckling behavior of sheet metal under lateral constraint using a combination of energy conservation and finite element method. Continuum elements are used in a simple Finite Element Analysis model to study wrinkles with a maximum wavelength of ten times the sheet thickness. The analysis provides the critical buckling stress and the resulting buckling wavelength as functions of normal pressure. Such relationships are then implemented in a Finite Element Method (FEM) package taht uses membrane elements to simulate the workpiece deformation during a forming process. The use of membrane elements significantly reduces the amount of computation time required in comparison to using structural shell elements with multiple integration points through the thickness. The stress histories calculated from the FEM membrane analysis are used to predict the onset of buckling during the forming process. The application of the forming of a rectangular pan is examined. The comparison between numerical simulation and the experimental results is presented. Our approach predicts the onset of buckling in excellent agreement with the experimental observations.
机译:呈现了一种用于预测深层拉伸过程中小波长法兰皱折的爆破发作的数值方法。该方法基于Cao和Boyce(1997)开发的方法,用于使用节能和有限元方法的组合预测横向约束下金属板的屈曲行为。连续元素用于简单的有限元分析模型,以研究皱纹,最大波长为纸张厚度的十倍。分析提供了突出的屈曲应力和所得屈曲波长作为常压的函数。然后以有限元方法(FEM)封装Taht在有限元方法(FEM)封装Taht中实现这种关系以在成形过程中模拟工件变形。使用膜元件的使用显着降低了与通过厚度的多积分点的结构壳元件相比的计算时间所需的计算时间。根据有限元膜分析计算的应力历史用于预测成型过程中屈曲的开始。检查了形成矩形盘的应用。介绍了数值模拟与实验结果之间的比较。我们的方法预测了与实验观察结果的良好协议中的屈曲。

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